Feasibility Studies for the EXL Project at FAIR *

Similar documents
Peter Egelhof GSI Darmstadt, Germany for the EXL Collaboration. Tokyo, Japan June 2 6, 2014

Measurements of proton-induced reactions on ruthenium-96 in the ESR at GSI

The Ring Branch. Nuclear Reactions at. Mass- and Lifetime Measurements. off Exotic Nuclei. Internal Targets. Electron and p. Experiments: Scattering

Light ion recoil detector

Reactions of neutron-rich Sn isotopes investigated at relativistic energies at R 3 B

EXL. EXotic nuclei studied in Light-ion induced reactions at the NESR storage ring. A unique opportunity at the future FAIR facility

PoS(NIC XI)248. Cross section measurements of 103 Rh(p, γ) 104 Pd with the Karlsruhe 4πBaF 2 detector

Peter Egelhof GSI Darmstadt, Germany. Liverpool, UK July 7-9, 2014

Fast-Neutron Production via Break-Up of Deuterons and Fast-Neutron Dosimetry

Nuclear Physics at the Lanzhou Storage Ring

THE SUPER-FRS PROJECT AT GSI

Hands on LUNA: Detector Simulations with Geant4

Heavy ion fusion energy program in Russia

Polarized Molecules: A new Option for Internal Storage-Cell Targets?

High Resolution Electron Spectrometry at the NESR. Ajay Kumar

Quasi-free neutron and proton knockout reactions on 57 Ni

Commissioning of the Polarized Internal Gas Target (PIT) of ANKE at COSY

PoS(DIS 2010)058. ATLAS Forward Detectors. Andrew Brandt University of Texas, Arlington

Measurement of nuclear recoil responses of NaI(Tl) crystal for dark matter search

Particle flow and reaction plane reconstruction in the CBM experiment

A Comparison between Channel Selections in Heavy Ion Reactions

Development of Secondary Electron Time Detector for Ion Beams

NUSTAR and the status of the R3B project at FAIR

The heavy-ion magnetic spectrometer PRISMA

Neutron capture cross section on Lu isotopes at DANCE

Tracking at the LAND/R B setup on 17

ISOSPIN RESOLVED DOUBLE PION PRODUCTION AT CELSIUS

PoS(KAON)049. Testing the µ e universality with K ± l ± ν decays

The EDM Polarimeter Development at COSY-Jülich

The TRD of the CBM experiment

EXPERIMENTAL STUDY OF NEUTRON FIELDS PRODUCED IN PROTON REACTIONS WITH HEAVY TARGETS. Nuclear Physics Institute AS CR, Rez Czech Republic

Nuclear lifetime measurements from data with independently varying observation

Search for an electric dipole moment with polarized beams in storage rings

Atomic Physics with Stored and Cooled Ions

José Antonio Briz Monago, M. Carmona-Gallardo and. M.J.G. Borge, A. Perea, O. Tengblad, M. Turrión

PoS(STORI11)050. The η π + π π 0 decay with WASA-at-COSY

Cross section measurements of the elastic electron - deuteron scattering

P-Carbon CNI Polarimeter Operation Experience

PoS(BORMIO2016)013. PANDA Forward Spectrometer Calorimeter. P.A. Semenov IHEP NRC KI S.I. Bukreeva IHEP NRC KI ITEP NRC KI

Beam diagnostics: Alignment of the beam to prevent for activation. Accelerator physics: using these sensitive particle detectors.

PoS(Bormio2012)013. K 0 production in pp and pnb reactions. Jia-Chii Berger-Chen

FAIR. Reiner Krücken for the NUSTAR collaboration

Characterization of the 3 MeV Neutron Field for the Monoenergetic Fast Neutron Fluence Standard at the National Metrology Institute of Japan

The Detector Design of the Jefferson Lab EIC

Track Reconstruction and Muon Identification in the Muon Detector of the CBM Experiment at FAIR

Physics of heavy multiply-charged ions: Studies on the borderile of atomic and nuclear physics

Investigation of the Pygmy Dipole Resonance in particle- coincidence experiments

anti-compton BGO detector

Experiments with heavy, highly charged ions - Status of the HITRAP project

Direct measurement of the 17 O(p,α) 14 N reaction at energies of astrophysical interest at LUNA

Measurements of liquid xenon s response to low-energy particle interactions

II. 5. Study for NaI(Tl) and Scintillation Fiber with 80 MeV Proton Beam Toward ESPRI Experiment at NIRS-HIMAC, RIKEN-RIBF

Balmer- and L-shell series of highly charged uranium in the experimental storage ring

Mechanical design of the RPC-based ToF wall (itof) for the R3B experiment at FAIR

AGATA: Gamma-ray tracking in segmented HPGe detectors

Dipole Response of Exotic Nuclei and Symmetry Energy Experiments at the LAND R 3 B Setup

Broadband lasercooling of relativistic C 3+ ions at the ESR

Compton Camera. Compton Camera

Invited. New generation of measurements and model developments on nuclide production in spallation reactions. 1 Introduction. 2 Installations of GSI

DESY Summer Students Program 2008: Exclusive π + Production in Deep Inelastic Scattering

The Compact Muon Solenoid Experiment. Conference Report. Mailing address: CMS CERN, CH-1211 GENEVA 23, Switzerland

New generation of measurements and model developments on nuclide production in spallation reactions

Status of the ESR And Future Options

Flux and neutron spectrum measurements in fast neutron irradiation experiments

Project P2 - The weak charge of the proton

PoS(TIPP2014)033. Upgrade of MEG Liquid Xenon Calorimeter. Ryu SAWADA. ICEPP, the University of Tokyo

The Hermes Recoil Silicon Detector

Simulation of GEM-TPC Prototype for the Super-FRS Beam Diagnostics System at FAIR

PoS(Baldin ISHEPP XXII)042

The physics program of PAX at COSY

An idea for the future proton detection of (p,2p) reactions with the R 3 B set-up at FAIR

STORAGE RINGS FOR RADIO-ISOTOPE BEAMS

Measurements and Simulations of Single-Event Upsets in a 28-nm FPGA. Hans Calén, Tord Johansson, Karoly Makónyi, Pawel Marciniewski

Isochronous Mass Measurements of Hot Exotic Nuclei

Physics opportunities with the AT-TPC. D. Bazin NSCL/MSU at ReA

CENBG, Bordeaux, France 2. CEA/DAM-DIF, Arpajon,France 3. CEA/DEN, Saint Paul Lez Durance, France 4. IPN Orsay, Orsay France 5

Track measurement in the high multiplicity environment at the CBM Experiment

University of Groningen. Study of compression modes in 56Ni using an active target Bagchi, Soumya

The experiment at JINR: status and physics program

Luminosity measurements and diffractive physics in ATLAS

H/He burning reactions on unstable nuclei for Nuclear Astrophysics

THE GSI FUTURE PROJECT: AN INTERNATIONAL ACCELERATOR FACILITY FOR BEAMS OF IONS AND ANTIPROTONS

Nuclear Astrophysics II

Fission Fragment characterization with FALSTAFF at NFS

Nuclear AstroPhysics at ELI-NP: preliminary experiments with ELISSA detector. Giovanni Luca Guardo

A new storage ring for ISOLDE

Longitudinal stacking and electron cooling of ion beams in the ESR as a proof of principle for FAIR. C. Dimopoulou

IMP's activities in COSY programs and the extension to HPLUS

On the Road to FAIR: 1st Operation of AGATA in PreSPEC at GSI

& SUN ZhiJia 1;2. Abstract

RATE CAPABILITY OF A HIGH EFFICIENCY TRANSITION RADIATION DETECTOR

MoNA: the Modular Neutron Array

A high intensity p-linac and the FAIR Project

arxiv: v1 [physics.ins-det] 11 Mar 2010

arxiv:physics/ v1 3 Aug 2006

Optimization of the SIS100 Lattice and a Dedicated Collimation System for Ionisation Losses

Investigation of the nuclear structure of 17 O at high excitation energy with five-particle transfer reactions

Results from the FRS Ion Catcher with projectile and fission fragments

Dedicated Arrays: MEDEA GDR studies (E γ = MeV) Highly excited CN E*~ MeV, 4 T 8 MeV

ACCELERATION, DECELERATION AND BUNCHING OF STORED AND COOLED ION BEAMS AT THE TSR, HEIDELBERG

Transcription:

* a,b,, S. Bagchi c, S. Diebold d, C. Dimopoulou a, P. Egelhof a, V. Eremin e, S. Ilieva a, N. Kalantar-Nayestanaki c, O. Kiselev a,f, T. Kröll f, Y.A. Litvinov a,g, M. Mutterer a, M.A. Najafi c, N. Petridis h, U. Popp a, C. Rigollet c, M. von Schmid f, M. Steck a, B. Streicher c a GSI Helmholtzzentrum für Schwerionenforschung GmbH, D-64291 Darmstadt, Germany b Institute of Modern Physics, Chinese Academy of Sciences, 730000 Lanzhou, China c Kernfysisch Versneller Institute, University of Groningen, NL-9747 AA Groningen, The Netherlands d Physikalisches Institut Tübingen, University of Tübingen, D-72076 Tübingen, Germany e Ioffe Physico-Technical Institute, Russian Academy of Sciences, RU-194021 St. Petersburg, Russia f Institut für Kernphysik, Technische Universität Darmstadt, D-64289 Darmstadt, Germany g Max-Planck-Institut für Kernphysik, D-69117 Heidelberg, Germany h Institut für Kernphysik, Johann Wolfgang Goethe-Universität Frankfurt am Main, D-60325 Frankfurt am Main, Germany For the EXL Collaboration This contribution presents the results of feasibility measurements performed for the EXL project. In order to investigate the performance of a Si detector under realistic storage ring conditions, a measurement was carried out at the Experimental Storage Ring (ESR) at GSI, Darmstadt. The stored 400 MeV/u 40 Ar beam was interacting with an internal hydrogen gas-jet target. An UHV (Ultra High Vacuum) compatible single-sided Si strip detector was mounted inside the vacuum chamber around the internal gas-jet target to detect recoil protons. The proton elastic-scattering cross section obtained using the recoil detector is compared with theoretical predictions. Preliminary results of the target and beam size as well as the background conditions of the recoil detector will also be presented. In order to investigate the response of DSSD (Double-Sided Silicon Strip Detector) prototype detectors to very low-energy protons, a detector test was performed at the Van-de-Graaff accelerator at Tübingen University. Protons with energies from 74 kev to 1.5 MeV were used in the test. An energy resolution of 20 kev (FWHM) has been obtained for the slowest protons. 8th International Conference on Nuclear Physics at Storage Rings (Stori11) Laboratori Nazionali di Frascati dell'infn, Italy October 9-14, 2011 * This work was supported in part by BMBF (06DA9040I) and HIC for FAIR. Speaker. E-mail: K.Yue@gsi.de Copyright owned by the author(s) under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike Licence. http://pos.sissa.it

1. Introduction The future facility FAIR [1, 2] will provide unique opportunities in experimental studies on nuclei far off stability and will also allow to explore new regions in the chart of nuclides of high interest for nuclear structure and astrophysics. As a part of the NUSTAR (NUclear STructure, Astrophysics and Reactions) [3] program at FAIR, the objective of the EXL [4] (EXotic nuclei studied in Light-ion induced reactions at the NESR storage ring) project is to capitalize on light-ion induced reactions in inverse kinematics by using storage-ring techniques and a universal detector system providing high resolution and large solid angle coverage in kinematically complete measurements. In inverse kinematics, small momentum transfer corresponds to target-like recoil ions moving at large scattering angles with very small energies. The essential nuclear structure information can be deduced from high-resolution measurements at low-momentum transfer. The key physics issues being covered within the EXL project are described in Ref. [4]. With high efficiency and resolution, EXL is a universal detection system, applicable to a wide class of reactions. The set-up foreseen to be installed at the internal target of the storage ring NESR (The New Experimental Storage Ring) includes a Si-detector array for recoiling targetlike reaction products, completed by gamma-ray and slow-neutron detectors, as well as forward detectors for fast ejectiles and an in-ring spectrometer for the detection of beam-like reaction products. In order to investigate the response of the EXL prototype DSSD to very low-energy protons, a detector test was performed at the 3 MeV Van-de-Graaff accelerator at Tübingen University. In addition, another feasibility study of the EXL experiment was performed at the existing storage ring ESR (Experimental Storage Ring [5]) at GSI Darmstadt, Germany. An aim of this test was to prove the possibility of deducing an elastic-scattering cross section by using silicon detectors in the storage ring. The background conditions of the silicon detector installed directly in UHV environment was also investigated. 2. The feasibility study at the ESR 2.1 Experimental setup For the feasibility experiment, an 40 Ar beam with an energy of 400 MeV/u was injected into the ESR from the heavy-ion synchrotron SIS, periodically exposed to electron cooling. On average more than 10 8 ions were circulating with a revolution frequency of 2 10 6 s -1, and interacting with an internal hydrogen gas-jet target (with a thickness of 10 13 atoms/cm 2 ) which was installed inside the vacuum chamber of the ESR. The schematic drawing of the detector setup is shown in Fig. 1. An UHV compatible single-sided silicon detector was mounted in the vacuum chamber to detect the target-like reaction products (Fig. 2). As compared to the test performed at the ESR in 2005 [6], there was no any metal foil in front of the recoil detector. Without any shield, the detector may be exposed to the ultraviolet (UV) light coming from beam-target interactions. A corresponding 2

Forward Detector Recoil Detector H 2 Fig. 1. Experimental setup for the feasibility experiment performed at the ESR at GSI. background produced by UV photons has been investigated. The silicon strip detector of 1 mm thickness and an area of 40 40 mm 2 was mounted on a vacuum compatible ceramic support. It has 40 strips in total, read out in five groups of 8 strips each. For each group of the strips, the energy deposition and position of the particles were reconstructed using a charge division method. The polar angle coverage of the recoil detector is shown in Fig. 3. 40 Ar Fig. 2. Photo of the UHV compatible Sistrip detector used in the EXL experiment. Fig.3. Polar angle coverage of the recoil detector. For the detection of the 40 Ar ions in coincidence with protons in the recoil detector, six silicon PIN diodes with a thickness of 500 μm were installed downstream the target before the dipole magnet, about 7 m away from the target. They formed a forward tagging detector which has been mounted on a moving mechanism directly in a UHV chamber at the ESR. Unfortunately, the moving mechanism did not work properly during the beam time. So this detector could not be used in the test. Furthermore, a photomultiplier tube (PMT) for the detection of the UV light produced from the beam-target interaction was mounted outside the reaction chamber surrounding the internal target. This device was used to monitor the beam intensity and measure the beam-target interaction profile by scanning the beam over the target. 3

2.2 Results At the beginning of the experiment, the beam moving across the target region was adjusted and the interaction profile was measured using the photomultiplier tube, detecting UV light produced by the interaction of the heavy ions with the hydrogen atoms. The interaction profile obtained with different beam intensities is shown in Fig. 4. At very low beam intensity (~0.2 ma), an interaction profile of 5.1 mm (FWHM) width was obtained. It could be considered to be identical to the target size because of the very narrow beam profile expected at such low beam intensity. At high intensity (~6.6 ma), the deduced interaction profile was 6.1 mm (FWHM). The beam size at high intensity was determined after unfolding from the target size to be 3.3 mm (FWHM). The beam and target profiles were used as the input parameters in the simulation for the scattering experiment (see below). The target size is reduced from 7.4 mm (FWHM) to 5.1 mm (FWHM) as compared to the test performed with 136 Xe beam in 2005 [6]. Fig. 4. The target profile as measured by the photomultiplier tube. Fig. 5 (left side) shows the energy deposition of recoil protons from the p- 40 Ar interaction on the recoil detector. Beside the recoil protons which follow the E-θ lab correlation expected from simulations (taking into account the punching-through events for energies larger than ~7 MeV), see the Fig. 5 (right side), low-energy events ( E 0.5 MeV) were observed over the whole angular range. According to the observation during the experiment, some of them are due to electronic noise, and some are low-energy events correlated with the beam-target interaction, most probably due to UV light. A pulse-shape analysis technique for events from the silicon detector is currently under development for identifying low-energy protons from the background [7]. For the p- 40 Ar interaction, the differential elastic-scattering cross section has been deduced using data from the first two groups of the Si-strip detector only corresponding to c.m. angles close to 0. According to the calculations assuming a point-like vertex, in the first two groups of strips, the amount of inelastic-scattering events should be small. Due to the limited angular resolution caused by the extended beam-target interaction zone the four momentum transfer squared -t = 2m p E p, (1) 4

was determined from the energy of recoils. In Eq. (1), m p is rest mass of the proton and E p the kinetic energy of the recoil proton in the laboratory frame. An energy-scattering angle correction was not possible. Fig. 5. Energy deposition on the detector obtained by the experiment data (left plot) and the simulated data (right plot). It is obvious from Fig. 5 that starting from the second group of strips in the recoil detector, the punching-through events for which only an energy loss ΔE could be determined with the recoil detector have to be taken into account in the cross section determination. For the correction of these punching-through events, Monte Carlo simulations were performed by implementing the detector, target and beam geometry in the Geant4 code. At this stage, only elastic proton scattering was considered in the simulations. On the basis of these simulations, a correction factor for deducing the final cross section has been extracted. Fig. 6 shows the experimental differential cross section as a function of t obtained using Eq. (1) without (solid Fig. 6. The experimental cross section for p- 40 Ar scattering at 400 MeV/u as a function of the four momentum transfer squared -t, without (solid squares) and with (solid circles) the correction of punching-through events by comparing to Geant4 simulated data. The solid line represents the result of a Glauber calculation. 5

squares) and with (solid circles) the correction for the punching-through events. The solid line represents the elastic-scattering cross section obtained from theoretical Glauber calculations using the single-gaussian parameterisation of matter distribution for a point-like vertex. At the moment, only the relative experimental cross section is extracted; for comparison it is normalized to the theoretical calculations at t = 0.0021 (GeV/c) 2. A good agreement between the theoretical prediction and the corrected data is obtained. 3. The test of the EXL prototype DSSD at low proton energy 3.1 Experimental Setup The detection of very low-energy protons is very important for the EXL experiment which is dedicated to investigate reactions at low momentum transfer. To study the response of the recoil detector to low-energy protons, a test at the Van-de-Graaff at the Tübingen University was performed. A 16 16 strips DSSD was tested, which is similar in the strip structure to the detectors to be used in the future EXL recoil detector. A detailed description of this DSSD can be found in Ref. [7]. Fig. 7. Experimental setup of the DSSD test in Tübingen. The experimental setup is shown in Fig. 7. As the lowest energy obtained from the accelerator was about 800 kev, a beam of H 2 hydrogen molecules was used to produce a proton beam of about 400 kev. In order to further reduce the beam energy, protons were scattered off carbon and gold targets, and in addition the energy of the scattered protons was reduced by aluminium or Mylar degrader foils. Finally, protons in the energy range from 74 kev to 1.5 MeV were used in the test. 3.2 Results Fig. 8 shows the test results for the highest and lowest energy protons. The energy resolution for 1.44 MeV protons was 17.7 kev FWHM; when the energy of the protons was reduced down to 74.7 kev, the resolution became 25.0 kev. In order to investigate the contribution of the energy resolution caused by the beam profile, scattering angle and degraders, a Geant4 simulation was performed. If we subtract the contribution of energy straggling, a detector resolution of about 20 kev (FWHM) is deduced for 74.7 kev protons. 6

Fig. 8. Energy resolution of DSSD for the highest (left plot) and the lowest (right plot) energy of protons. 4. Conclusions Two in-beam tests for the EXL project were performed. From these tests and a very first test performed in 2005, we obtained important information about the operation and performance of the silicon detectors under UHV conditions, and about the background conditions in the interaction region of a stored beam with an internal target. The deduced elastic p- 40 Ar scattering cross section was obtained, in good agreement with theoretical predictions. The prototype EXL DSSD has good response to very low-energy protons. As a more extended feasibility study for the EXL project, an experiment with stable and radioactive beams which aims to investigate elastic and inelastic proton- 58,56 Ni scattering at the ESR has been proposed. In a new vacuum chamber, the recoil detector composed of large-size DSSDs and Si(Li) detectors and a new forward tagging detector will be used. References [1] W. F. Henning, The future GSI facility, Nucl. Instrum. Meth. B214, (2004) 211-215. [2] FAIR Baseline Technical Report, GSI Darmstadt, Germany (2006), http://www.faircenter.de/fileadmin/fair/publications_fair/fair_btr_1.pdf [3] http://www.gsi.de/forschung/fair_experiments/nustar/ [4] Update of the Technical Proposal for the Design, Construction, Commissioning and Operation of the EXL Project (Exotic nuclei studied in light-ion induced reactions at the NESR storage ring), http://www.fair-center.de/fileadmin/fair/publications_fair/fair_btr_4.pdf [5] B. Franzke, The heavy ion storage and cooler ring project ESR at GSI, Nucl. Instr. and Meth. B 24/25 (1987) 18-25. [6] H. Moeini et al., First feasibility experiment for the EXL project with prototype detectors at the ESR storage ring, Nucl. Instr. and Meth. A 634 (2011) 77 84. [7] M. von Schmid et al., First application of pulse-shape analysis to silicon micro-strip detectors, Nucl. Instr. and Meth. A 629 (2011) 197 201. 7